Azimuth 2026-10-06
Azimuth is the angle about the local vertical measured in the astronomical horizon. A common convention increases eastward from north; some astronomical formulae use westward from north. The convention changes the sign in the hour angle transformation.
Hour angle 2026-10-06
The hour angle of a direction is the westward angle from the upper celestial meridian to its hour circle. In a consistent equinox convention, modulo one turn, where is right ascension and LST is local sidereal time.
Local sidereal time is the right ascension on the upper celestial meridian. Since right ascension increases eastward while hour angle increases westward, their difference is
One hour of either coordinate is . For a fixed stellar direction, increases at the sidereal rotation rate. Mean sidereal time should be used with mean right ascension, or apparent sidereal time with apparent right ascension, for the same reference equinox.
Use azimuth measured from north toward west, and positive hour angle westward. These conventions are forced by the signs in the coordinate formulae. In the diagram the observer is at , the local vertical meets the celestial sphere at the zenith , and the north celestial pole is . The astronomical horizon is perpendicular to ; the celestial equator is perpendicular to . Their intersections with the celestial meridian give the north horizon point and the upper equatorial meridian point.
Figure 1.
The celestial sphere with horizon and equatorial coordinates
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The north celestial pole has altitude ; thus the angle between and is . Project along its vertical great circle onto the astronomical horizon at : the arc is the altitude , and the westward horizon arc from north to is the azimuth . Project along its hour circle onto the celestial equator at : the arc is the declination , and the westward equatorial arc from the upper celestial meridian to is the hour angle . Equivalently the triangle on the celestial sphere has sides , and . All five angles refer to arcs on their specified reference circles, not arbitrary angles in the projected drawing.
A star of declination crosses the zenith. Its direction rotates around the celestial pole at , but its actual angular velocity on the celestial sphere is . Consequently the small-angle crossing-gap estimate becomes
For clarity, the factor is the radius of the star's daily circle on a unit celestial sphere; it does not modify the sidereal hour angle rate.
The estimate assumes the required slew is nearly . A more exact ideal symmetric reacquisition calculation is possible. Let the endpoints have hour angles and suppose , small enough that both endpoints are above the astronomical horizon. The horizontal direction components are and . Their shortest azimuth separation is
The minimum ideal gap satisfies ; its angular separation is . Expanding for a fast drive gives the boxed expression. At an equatorial site exactly. At a geographic pole the direction with is stationary, so the crossing argument is inapplicable and the limit is zero. A full near-zenith rate-limited footprint still requires specifying the trajectory and drive model.